论文标题

人群中基于蓝牙的分散接触跟踪的经验评估

An Empirical Evaluation of Bluetooth-based Decentralized Contact Tracing in Crowds

论文作者

Hsiao, Hsu-Chun, Huang, Chun-Ying, Cheng, Shin-Ming, Hong, Bing-Kai, Hu, Hsin-Yuan, Wu, Chia-Chien, Lee, Jian-Sin, Wang, Shih-Hong, Jeng, Wei

论文摘要

许多国家正在使用数字接触跟踪来帮助遏制Covid-19在锁定后世界中的传播。在各种可用技术中,使用蓝牙接收的信号强度指示(RSSI)来检测接近性的分散式接触跟踪被认为是隐私风险的少于依靠通过GPS收集绝对位置的方法,蜂窝较高的历史记录或QR代码扫描。截至2020年10月,由于越来越多的国家正式采用了这些基于蓝牙的合同追踪应用程序,已有数百万美元的下载。但是,由于缺乏包括现实的人群规模和密度,这些应用程序在现实世界中的有效性尚不清楚。这项研究的目的是通过经验研究在人群环境中基于蓝牙的接触示威的有效性来填补这一空白,共有80名参与者,模拟教室,移动的线条和其他类型的现实世界聚会。结果证实,蓝牙RSSI对检测接近性不可靠,并且这种不准确性在特别拥挤的环境中恶化。换句话说,这种技术在大多数需要时可能是最不可能的,并且在面对低成本干扰的情况下它是脆弱的。此外,发现诸如通过接触追踪应用程序引起的高能耗和电话过热等技术问题对用户采用它的愿意产生负面影响。但是,在明亮的一面,蓝牙RSSI仍然可用于检测粗粒的接触事件,例如,持续一个小时的距离最大20m。根据我们的发现,我们建议可以重新使用现有的接触追踪应用程序,以专注于粗粒接近检测,并根据辅助信息校准距离估计并调整广播频率。

Digital contact tracing is being used by many countries to help contain COVID-19's spread in a post-lockdown world. Among the various available techniques, decentralized contact tracing that uses Bluetooth received signal strength indication (RSSI) to detect proximity is considered less of a privacy risk than approaches that rely on collecting absolute locations via GPS, cellular-tower history, or QR-code scanning. As of October 2020, there have been millions of downloads of such Bluetooth-based contract-tracing apps, as more and more countries officially adopt them. However, the effectiveness of these apps in the real world remains unclear due to a lack of empirical research that includes realistic crowd sizes and densities. This study aims to fill that gap, by empirically investigating the effectiveness of Bluetooth-based contact tracing in crowd environments with a total of 80 participants, emulating classrooms, moving lines, and other types of real-world gatherings. The results confirm that Bluetooth RSSI is unreliable for detecting proximity, and that this inaccuracy worsens in environments that are especially crowded. In other words, this technique may be least useful when it is most in need, and that it is fragile when confronted by low-cost jamming. Moreover, technical problems such as high energy consumption and phone overheating caused by the contact-tracing app were found to negatively influence users' willingness to adopt it. On the bright side, however, Bluetooth RSSI may still be useful for detecting coarse-grained contact events, for example, proximity of up to 20m lasting for an hour. Based on our findings, we recommend that existing contact-tracing apps can be re-purposed to focus on coarse-grained proximity detection, and that future ones calibrate distance estimates and adjust broadcast frequencies based on auxiliary information.

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